Excel Time Series Models for Business Forecasting
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Excel Time Series Models for Business Forecasting
This course is part of Excel Skills for Business Forecasting Specialization
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There are 6 modules in this course
This course explores different time series business forecasting methods. The course covers a variety of business forecasting methods for different types of components present in time series data β level, trending, and seasonal. We will learn about the theoretical methods and apply these methods to business data using Microsoft Excel. These forecasting methods will be programmed into Microsoft Excel, displayed graphically, and we will optimise these models to produce accurate forecasts. We will compare different models and their forecasts to decide which model best suits our business' needs.
Business Forecasting is part of any and every organisation. Organisations need to forecast so that they can plan for the organisationβs needs. Business forecasts are the inputs to every organisationβs planning β without business forecasts we cannot plan for our resources, our production, our supply chains β and ultimately our costs, revenues and profits. The current state of the world makes business forecasting even more fundamental to the operation of institutions. In this course we focus on Excel Skills for Business Forecasting using Time Series Models. We will be looking at how your business can utilise time series data sets to understand the different components underlying this data, and then apply the relevant model depending on these components. We will look at a range of business forecasting methods, and sometimes, more than one method may be needed! The models we look at are: NaΓ―ve Forecasting, Moving Averages, Trend-fitting, Simple Exponential Smoothing, Holtβs Exponential Smoothing, Winters Exponential Smoothing, and Decomposition. This course then continues in our second course in this specialisation which looks at Regression Models, and our third course in this specialisation which looks at Judgmental Forecasting. #EveryoneSayWow
What's included
2 videos3 readings
2 videosβ’Total 2 minutes
- Excel Skills for Business Forecasting Introductionβ’1 minute
- Course introductionβ’2 minutes
3 readingsβ’Total 30 minutes
- Welcome to Excel Time Series Models for Business Forecastingβ’10 minutes
- Course goals and weekly learning objectivesβ’10 minutes
- Important information about versions and regionsβ’10 minutes
In this module, we explore the context and purpose of business forecasting and the three types of business forecasting β time series, regression, and judgmental. This course focuses on time series models. We will learn about time series models, as well as the component of time series data. We will then look at a preliminary forecasting method β Average Forecasts. Once we have a forecast, we need a tool to judge the accuracy of the forecasts β which are the forecasts and the error criterion calculated from these.
What's included
4 videos4 readings3 assignments
4 videosβ’Total 43 minutes
- Time Series Modelsβ’11 minutes
- Components of Time Series Dataβ’11 minutes
- Average Forecastsβ’9 minutes
- Errors and Error Criterionβ’12 minutes
4 readingsβ’Total 55 minutes
- Read me before you start: Quizzes and Navigationβ’10 minutes
- Download the Week 1 workbooksβ’5 minutes
- Week 1 Toolboxβ’10 minutes
- Week 1 Practice Challengeβ’30 minutes
3 assignmentsβ’Total 30 minutes
- Components of Time Series Dataβ’10 minutes
- Average Forecastsβ’10 minutes
- Errors and Error Criterionβ’10 minutes
In this module, we explore different time series forecasting methods available for data that is level.
What's included
5 videos2 readings5 assignments
5 videosβ’Total 45 minutes
- Level Time Seriesβ’8 minutes
- NaΓ―ve Forecastsβ’9 minutes
- Moving Average Forecastsβ’8 minutes
- Simple Exponential Smoothingβ’11 minutes
- Solver for SES Forecastingβ’9 minutes
2 readingsβ’Total 15 minutes
- Download the Week 2 workbooksβ’5 minutes
- Week 2 Toolboxβ’10 minutes
5 assignmentsβ’Total 80 minutes
- NaΓ―ve Forecastsβ’10 minutes
- Moving Average Forecastsβ’10 minutes
- Simple Exponential Smoothingβ’10 minutes
- Solver for SES Forecastingβ’10 minutes
- Assessment β weeks 1 and 2β’40 minutes
In this module, we explore different time series forecasting methods available for data that is trending.
What's included
4 videos3 readings3 assignments
4 videosβ’Total 38 minutes
- Trending Time Seriesβ’7 minutes
- Trend-fittingβ’10 minutes
- Holt's Exponential Smoothingβ’11 minutes
- Solver for HES Forecastingβ’10 minutes
3 readingsβ’Total 45 minutes
- Download the Week 3 workbooksβ’5 minutes
- Week 3 Toolboxβ’10 minutes
- Week 3 Practice Challengeβ’30 minutes
3 assignmentsβ’Total 30 minutes
- Trend-fittingβ’10 minutes
- Holt's Exponential Smoothingβ’10 minutes
- Solver for HES Forecastingβ’10 minutes
In this module, we explore a time series forecasting method (Winters Exponential Smoothing) available for data that is seasonal.
What's included
4 videos2 readings4 assignments
4 videosβ’Total 35 minutes
- Seasonal Time Seriesβ’7 minutes
- Winters Exponential Smoothing β Seedsβ’10 minutes
- Winters Exponential Smoothing β Forecastsβ’10 minutes
- Solver for WES Forecastsβ’8 minutes
2 readingsβ’Total 15 minutes
- Download the Week 4 workbooksβ’5 minutes
- Week 4 Toolboxβ’10 minutes
4 assignmentsβ’Total 70 minutes
- Winters Exponential Smoothing β Seedsβ’10 minutes
- Winters Exponential Smoothing β Forecastsβ’10 minutes
- Solver for WES Forecastsβ’10 minutes
- Assessment β weeks 3 and 4β’40 minutes
In this module, we explore a time series forecasting method (Decomposition) available for data that is seasonal.
What's included
4 videos2 readings4 assignments
4 videosβ’Total 42 minutes
- Decompositionβ’9 minutes
- Decomposition β De-seasonalisingβ’10 minutes
- Decomposition β De-trending and Forecastingβ’10 minutes
- Autocorrelation Functions for Testing our Componentsβ’13 minutes
2 readingsβ’Total 15 minutes
- Download the Week 5 workbooksβ’5 minutes
- Week 5 Toolboxβ’10 minutes
4 assignmentsβ’Total 70 minutes
- Decomposition β De-seasonalisingβ’10 minutes
- Decomposition β De-trending and Forecastingβ’10 minutes
- Autocorrelation Functions for Testing our Componentsβ’10 minutes
- Final assessment β all course contentβ’40 minutes
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Reviewed on Sep 20, 2021
I was able to immediately apply the forecasting models to my existing data. Highly recommend this course.!!
Reviewed on Apr 18, 2022
This is really good course. Every part of time series explained well. This is really helpful.
Reviewed on Nov 21, 2022
Great Skills thought. Thank you Prashan, for making your lessons easy to understand
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